A manufacturing and processing device for solid-state batteries
By designing an automated solid-state battery manufacturing and processing device, the problems of electrode damage and large interface internal resistance caused by manual operation were solved, efficient battery production and cutting accuracy were achieved, and battery quality was improved.
Patent Information
- Application Number
- CN202411108258.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-13
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2044-08-13
AI Technical Summary
The existing solid-state battery processing process has electrode damage and quality defects caused by manual operation, and the internal resistance of the lithium-ion solid-state battery interface is large, which is difficult to solve through manual compression and aluminum-plastic film packaging.
An automated manufacturing and processing device including mixing, material transfer, conveying, hot pressing, material transfer, laser cutting and stacking mechanisms was designed for the automated production of solid-state batteries. It can mix materials, cut electrode sheets and perform hot pressing.
It realizes the automated production of solid-state batteries, reduces the probability of material sticking to the wall, improves the cutting accuracy and interface contact quality of electrode sheets, and reduces quality problems caused by manual operation.
Smart Images

Figure CN118983532B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of solid-state battery manufacturing, and more specifically, to a manufacturing and processing device for solid-state batteries. Background Art
[0002] Lithium batteries are a type of battery that uses lithium metal or lithium alloy as positive and negative electrode materials and uses non-aqueous electrolyte solutions. Lithium batteries are divided into lithium metal batteries and lithium ion batteries. Lithium metal batteries are composed of positive electrodes, separators, negative electrodes, organic electrolytes and battery casings. Lithium metal battery electrodes are composed of current collector copper foil, aluminum foil, etc. coated with an organic solvent containing lithium cobalt oxide and acetylene black.
[0003] Existing solid-state battery processing is accomplished through a combination of mechanical equipment and manual labor. On the one hand, the manual handling process can easily damage the electrode, leading to quality defects and even scrapping of the workpiece. Furthermore, the multiple transfers required during the manual process can also easily lead to processing quality issues. Furthermore, lithium-ion solid-state batteries are prone to high interfacial resistance, which cannot be addressed solely through manual compression and the binding force of aluminum-plastic film packaging. Summary of the Invention
[0004] 1. Technical problems to be solved
[0005] In response to the problems existing in the prior art, the purpose of the present invention is to provide a manufacturing and processing device for solid-state batteries. On the basis of realizing automated processing of solid-state batteries, the present invention can also scrape the inner wall of the raw material mixing barrel and cut the solid-state battery to size.
[0006] 2. Technical solution
[0007] In order to solve the above problems, the present invention adopts the following technical solutions:
[0008] A manufacturing and processing device for solid-state batteries comprises: a mixing mechanism, a material transfer mechanism installed on the surface of the mixing mechanism, a conveying mechanism provided on one side of the mixing mechanism, a hot pressing mechanism installed on the upper surface of the conveying mechanism, a material moving mechanism installed on the upper surface of the conveying mechanism and on one side of the hot pressing mechanism, a laser cutting mechanism installed on the rear side of the conveying mechanism, and a lamination mechanism installed on one side of the laser cutting mechanism.
[0009] As a preferred solution of the present invention, the mixing mechanism includes a mixing barrel, the inner wall of the mixing barrel is rotatably connected to a rotating shaft, the surface of the rotating shaft is fixedly connected to a mixing paddle, the surface of the rotating shaft and the outside of the mixing paddle are provided with a plurality of mixing rods in a ring array, the surface of the mixing rod is rotatably connected to a plurality of rotating parts, the surface of the rotating part is fixedly connected to a scraper, a first servo motor is installed on the top of the mixing barrel, and the output shaft of the first servo motor is fixedly connected to one end of the rotating shaft, the upper surface of the mixing barrel is rotatably connected to two upper cover plates, the surface of the upper cover plate is fixedly connected to a movable handle, and a discharge valve is installed on the top of the mixing barrel.
[0010] As a preferred embodiment of the present invention, the material transfer mechanism includes a material transfer barrel installed on the surface of the mixing barrel, the inner wall of the material transfer barrel is rotatably connected to a material transfer auger, a material transfer hopper is installed on the surface of the material transfer auger, and the two ends of the material transfer hopper are respectively connected to the material transfer barrel and the discharge valve, a second servo motor is installed on the top of the material transfer barrel, and the output shaft of the second servo motor is fixedly connected to the top of the material transfer auger, a material guide plate is installed on the surface of the material transfer auger, a material spray head is installed on one side of the material guide plate, and the two ends of the material guide plate are respectively connected to the material transfer auger and the material spray head.
[0011] As a preferred solution of the present invention, the conveying mechanism includes a first support frame arranged on one side of the mixing barrel, and a first mounting seat for fixing the material guide plate is installed on the surface of one side of the first support frame. The surface of the first support frame is rotatably connected to two conveying shafts, and the two conveying shafts are rotatably connected through a conveyor belt. A third servo motor is installed on the surface of the first support frame, and the output shaft of the third servo motor is fixedly connected to a conveying shaft. Support seats are fixedly connected to both sides of the upper surface of the first support frame, and a limiting baffle is fixedly connected to the inner side of the support seat.
[0012] As a preferred solution of the present invention, the material moving mechanism includes a first sliding rail installed on the upper surface of the first support frame, the surface of the first sliding rail is slidably connected to the first sliding seat, the surface of the first sliding seat is installed with a first electric telescopic rod for longitudinal adjustment, the surface of the piston rod of the first electric telescopic rod is fixedly connected to a vacuum suction cup, the surface of the first sliding seat is installed with a fourth servo motor, the surface of the output shaft of the fourth servo motor is fixedly connected with a first gear, the surface of a first sliding rail is installed with a first gear plate, and the first gear is meshed with the first gear plate.
[0013] As a preferred solution of the present invention, the hot pressing mechanism includes a second mounting seat installed on the upper surface of the first support frame, the surface of the second mounting seat is installed with a second electric telescopic rod extending longitudinally, the surface of the piston rod of the second electric telescopic rod is fixedly connected to a heating plate, and two first guide rods are installed on the upper surface of the heating plate, and the first guide rods are slidably connected to the surface of the second electric telescopic rod.
[0014] As a preferred solution of the present invention, the laser cutting mechanism includes a second support frame installed on the rear side of the first support frame, a third electric telescopic rod is installed on the upper surface of the second support frame, two second sliding rails are installed on the surface of the second support frame, the surface of the second sliding rail is slidably connected to the second sliding seat, and the piston rod of the third electric telescopic rod is fixedly connected to the second sliding seat, the surface of the second sliding seat is installed with a third mounting seat, the surface of the third mounting seat is installed with a longitudinally extending fourth electric telescopic rod, the surface of the piston rod of the fourth electric telescopic rod is fixedly connected to a laser generator, the surface of the second support frame is installed with an electric slide, the surface of the electric slide moving part is fixedly connected to two support trays, and the surface of the support tray is clamped with a cutting disk.
[0015] As a preferred solution of the present invention, the stacking mechanism includes a third support frame installed on the rear side of the second support frame, the surface of the third support frame is slidably connected to a push plate, the surface of the third support frame is rotatably connected to a threaded rod, the surface of the threaded rod is threadedly connected to an internal threaded plate, and the internal threaded plate is fixedly connected to the push plate, the surface of the third support frame and both sides of the threaded rod are fixedly connected to the second guide rod, and the internal threaded plate is slidably connected to the surface of the second guide rod, the surface of the third support frame is installed with a fifth servo motor, the surface of the fifth servo motor output shaft is fixedly connected to the first pulley, the surface of the threaded rod is fixedly connected to the second pulley, and the first pulley and the second pulley are rotatably connected by a transmission belt.
[0016] 3. Beneficial effects
[0017] Compared with the prior art, the advantages of the present invention are:
[0018] (1) The present invention can mix the solid electrolyte and the active material by setting up a mixing mechanism, and reduce the probability of the material sticking to the inner wall during mixing. The mixed material can then be transported by the material transfer mechanism, and the metal foil can be transported by the conveying mechanism. At this time, the material is moved to the surface of the conveying mechanism by the material transfer mechanism.
[0019] (2) The present invention can hot-press materials and metal foils through a hot-pressing mechanism. After the hot-pressing is completed, the electrode sheet is moved to the surface of the laser cutting mechanism by the material moving mechanism. At this time, the electrode sheet is cut by the laser cutting mechanism. After the cutting is completed, the material moving mechanism moves the electrode sheet to the surface of the stacking mechanism for limiting. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 A perspective view of a manufacturing and processing device for solid-state batteries according to the present invention;
[0021] Figure 2 A schematic diagram of a mixing mechanism in a manufacturing and processing device for solid-state batteries according to the present invention;
[0022] Figure 3 This is a schematic diagram of a material transfer mechanism in a manufacturing and processing device for solid-state batteries according to the present invention;
[0023] Figure 4 This is a schematic diagram of a conveying mechanism and a material moving mechanism in a manufacturing and processing device for solid-state batteries according to the present invention;
[0024] Figure 5 A schematic diagram of a hot pressing mechanism in a manufacturing and processing device for solid-state batteries according to the present invention;
[0025] Figure 6 This is a schematic diagram from a first perspective of a laser cutting mechanism in a manufacturing and processing device for solid-state batteries according to the present invention;
[0026] Figure 7 This is a schematic diagram from a second perspective of a laser cutting mechanism in a manufacturing and processing device for solid-state batteries according to the present invention;
[0027] Figure 8 This is a schematic diagram from a first perspective of a lamination mechanism in a manufacturing and processing device for solid-state batteries according to the present invention;
[0028] Figure 9 This is a second perspective schematic diagram of a stacking mechanism in a manufacturing and processing device for solid-state batteries according to the present invention.
[0029] Description of the numbers in the figure:
[0030] 1. Mixing mechanism; 101. Mixing barrel; 102. Rotating shaft; 103. Mixing paddle; 104. Mixing rod; 105. Rotating member; 106. Scraper; 107. First servo motor; 108. Upper cover; 109. Moving handle; 110. Unloading valve; 2. Material transfer mechanism; 201. Material transfer barrel; 202. Material transfer auger; 203. Material transfer hopper; 204. Second servo motor; 205. Material guide plate; 206. Material spray head; 3. Conveying mechanism; 301. First support frame; 302. First mounting seat; 303. Conveying shaft; 304. Conveyor belt; 305. Third servo motor; 306. Limit baffle; 307. Support seat; 4. Hot pressing mechanism; 401. Second mounting seat; 402. Second electric telescopic rod; 403. Heating plate; 404. First guide rod; 5. Material transfer Mechanism; 501, first sliding rail; 502, first sliding seat; 503, first electric telescopic rod; 504, vacuum suction cup; 505, fourth servo motor; 506, first gear; 507, first tooth plate; 6, laser cutting mechanism; 601, second support frame; 602, third electric telescopic rod; 603, second sliding rail; 604, second sliding seat; 605, third mounting seat; 606, fourth electric telescopic rod; 607, laser generator; 608, electric slide; 609, support tray; 610, cutting disk; 7, stacking mechanism; 701, third support frame; 702, push plate; 703, threaded rod; 704, internal thread plate; 705, second guide rod; 706, fifth servo motor; 707, first pulley; 708, transmission belt; 709, second pulley. DETAILED DESCRIPTION
[0031] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of them. All other embodiments derived by persons of ordinary skill in the art based on the embodiments of the present invention without inventive effort are also within the scope of protection of the present invention.
[0032] Example:
[0033] See also Figure 1-9 A manufacturing and processing device for solid-state batteries includes: a mixing mechanism 1, a material transfer mechanism 2 is installed on the surface of the mixing mechanism 1, a conveying mechanism 3 is provided on one side of the mixing mechanism 1, a hot pressing mechanism 4 is installed on the upper surface of the conveying mechanism 3, a material moving mechanism 5 is installed on the upper surface of the conveying mechanism 3 and on one side of the hot pressing mechanism 4, a laser cutting mechanism 6 is installed on the rear side of the conveying mechanism 3, and a stacking mechanism 7 is installed on one side of the laser cutting mechanism 6.
[0034] In a specific embodiment of the present invention, the solid electrolyte and active material can be mixed through the setting of the mixing mechanism 1, and the probability of the material sticking to the inner wall can be reduced during mixing. The mixed material can then be transported through the material transfer mechanism 2, and the metal foil can be transported through the conveying mechanism 3. At this time, the material is moved to the surface of the conveying mechanism 3 through the material transfer mechanism 2, and the material and metal foil can be hot pressed through the hot pressing mechanism 4. After the hot pressing is completed, the electrode sheet is moved to the surface of the laser cutting mechanism 6 through the material moving mechanism 5. At this time, the electrode sheet is cut by the laser cutting mechanism 6. After the cutting is completed, the material moving mechanism 5 moves the electrode sheet to the surface of the stacking mechanism 7 for limiting.
[0035] Specifically, the mixing mechanism 1 includes a mixing barrel 101, the inner wall of the mixing barrel 101 is rotatably connected to a rotating shaft 102, the surface of the rotating shaft 102 is fixedly connected to a mixing paddle 103, and a plurality of mixing rods 104 are installed in a circular array on the surface of the rotating shaft 102 and located on the outside of the mixing paddle 103, the surface of the mixing rod 104 is rotatably connected to a plurality of rotating parts 105, the surface of the rotating part 105 is fixedly connected to a scraper 106, a first servo motor 107 is installed on the top of the mixing barrel 101, and the output shaft of the first servo motor 107 is fixedly connected to one end of the rotating shaft 102, two upper cover plates 108 are rotatably connected to the upper surface of the mixing barrel 101, a movable handle 109 is fixedly connected to the surface of the upper cover plate 108, and a discharge valve 110 is installed on the top of the mixing barrel 101.
[0036] In a specific embodiment of the present invention, the upper cover 108 is opened by moving the handle 109, and the raw materials can be poured into the interior of the mixing barrel 101. The first servo motor 107 is started and its output shaft drives the rotating shaft 102 to rotate. The rotation of the rotating shaft 102 drives the mixing paddle 103, the mixing rod 104 and the rotating part 105 to rotate. At this time, the mixing paddle 103, the mixing rod 104 and the rotating part 105 mix the raw materials. At the same time, the mixing rod 104 and the rotating part 105 will scrape the inner wall of the mixing barrel 101, and then the discharge valve 110 will discharge the raw materials.
[0037] Specifically, the material transfer mechanism 2 includes a material transfer barrel 201 installed on the surface of the mixing barrel 101, and the inner wall of the material transfer barrel 201 is rotatably connected to a material transfer auger 202. A material transfer hopper 203 is installed on the surface of the material transfer auger 202, and the two ends of the material transfer hopper 203 are respectively connected to the material transfer barrel 201 and the discharge valve 110. A second servo motor 204 is installed on the top of the material transfer barrel 201, and the output shaft of the second servo motor 204 is fixedly connected to the top of the material transfer auger 202. A material guide plate 205 is installed on the surface of the material transfer auger 202, and a spray head 206 is installed on one side of the material guide plate 205, and the two ends of the material guide plate 205 are respectively connected to the material transfer auger 202 and the spray head 206.
[0038] In a specific embodiment of the present invention, the material falls into the interior of the transfer barrel 201 through the transfer hopper 203, and the second servo motor 204 is used to start its output shaft to drive the transfer auger 202 to rotate, thereby moving the material to the interior of the guide plate 205, and then the material is discharged through the spray head 206 and placed on the surface of the metal foil.
[0039] Specifically, the conveying mechanism 3 includes a first support frame 301 arranged on one side of the mixing barrel 101, and a first mounting seat 302 for fixing the guide plate 205 is installed on the surface of one side of the first support frame 301. The surface of the first support frame 301 is rotatably connected to two conveying shafts 303, and the two conveying shafts 303 are rotatably connected through a conveyor belt 304. A third servo motor 305 is installed on the surface of the first support frame 301, and the output shaft of the third servo motor 305 is fixedly connected to a conveying shaft 303. Support seats 307 are fixedly connected on both sides of the upper surface of the first support frame 301, and a limiting baffle 306 is fixedly connected to the inner side of the support seat 307.
[0040] In a specific embodiment of the present invention, the output shaft of the third servo motor 305 is started to drive one conveying shaft 303 to rotate, and at this time, the other conveying shaft 303 is driven to rotate under the action of the conveyor belt 304. At this time, the metal foil is driven to move by the conveyor belt 304, and the metal foil is blocked by the limit baffle 306.
[0041] Specifically, the material moving mechanism 5 includes a first sliding rail 501 installed on the upper surface of the first support frame 301, the surface of the first sliding rail 501 is slidably connected to the first sliding seat 502, the surface of the first sliding seat 502 is installed with a longitudinally adjustable first electric telescopic rod 503, the surface of the piston rod of the first electric telescopic rod 503 is fixedly connected with a vacuum suction cup 504, the surface of the first sliding seat 502 is installed with a fourth servo motor 505, the surface of the output shaft of the fourth servo motor 505 is fixedly connected with a first gear 506, a first gear plate 507 is installed on the surface of a first sliding rail 501, and the first gear 506 is meshed with the first gear plate 507.
[0042] In a specific embodiment of the present invention, the fourth servo motor 505 is activated to start its output shaft to drive the first gear 506 to rotate. At this time, under the action of the first gear plate 507, the first sliding seat 502 is driven to move. Then, the first electric telescopic rod 503 is activated to start its piston rod to drive the vacuum suction cup 504 to move, thereby moving the electrode sheet.
[0043] Specifically, the hot pressing mechanism 4 includes a second mounting seat 401 installed on the upper surface of the first support frame 301, and a second electric telescopic rod 402 extending longitudinally is installed on the surface of the second mounting seat 401. The surface of the piston rod of the second electric telescopic rod 402 is fixedly connected to a heating plate 403, and two first guide rods 404 are installed on the upper surface of the heating plate 403, and the first guide rods 404 are slidably connected to the surface of the second electric telescopic rod 402.
[0044] In a specific embodiment of the present invention, the second electric telescopic rod 402 is used to activate its piston rod to drive the heating platen 403 to move, thereby hot pressing the material and metal foil. The first guide rod 404 can increase the stability of the heating platen 403 during movement.
[0045] Specifically, the laser cutting mechanism 6 includes a second support frame 601 installed on the rear side of the first support frame 301, a third electric telescopic rod 602 is installed on the upper surface of the second support frame 601, two second sliding rails 603 are installed on the surface of the second support frame 601, the surface of the second sliding rail 603 is slidably connected to the second sliding seat 604, and the piston rod of the third electric telescopic rod 602 is fixedly connected to the second sliding seat 604, the surface of the second sliding seat 604 is installed with a third mounting seat 605, the surface of the third mounting seat 605 is installed with a longitudinally extending fourth electric telescopic rod 606, the surface of the piston rod of the fourth electric telescopic rod 606 is fixedly connected to a laser generator 607, the surface of the second support frame 601 is installed with an electric slide 608, the surface of the moving part of the electric slide 608 is fixedly connected to two support trays 609, and the surface of the support tray 609 is clamped with a cutting disk 610.
[0046] In a specific embodiment of the present invention, the piston rod of the third electric telescopic rod 602 is activated to drive the second sliding seat 604 to move on the surface of the second sliding rail 603, and the second sliding rail 603 drives the third mounting seat 605 to move. At this time, the electrode sheet on the surface of the cutting disk 610 can be cut. At the same time, the support tray 609 and the cutting disk 610 can be driven to move by the electric slide 608, so as to cut different positions of the electrode sheet.
[0047] Specifically, the lamination mechanism 7 includes a third support frame 701 installed on the rear side of the second support frame 601, the surface of the third support frame 701 is slidably connected to the push plate 702, the surface of the third support frame 701 is rotatably connected to the threaded rod 703, the surface of the threaded rod 703 is threadedly connected to the internal threaded plate 704, and the internal threaded plate 704 is fixedly connected to the push plate 702, the surface of the third support frame 701 and both sides of the threaded rod 703 are fixedly connected to the second guide rod 705, and the internal threaded plate 704 is slidably connected to the surface of the second guide rod 705, the surface of the third support frame 701 is installed with a fifth servo motor 706, the surface of the output shaft of the fifth servo motor 706 is fixedly connected to the first pulley 707, the surface of the threaded rod 703 is fixedly connected to the second pulley 709, and the first pulley 707 and the second pulley 709 are rotatably connected through a transmission belt 708.
[0048] In a specific embodiment of the present invention, the electrode sheet can be limited by the push plate 702. When the position of the push plate 702 needs to be adjusted, the fifth servo motor 706 is started, and the fifth servo motor 706 starts its output shaft to drive the first pulley 707 to rotate. At this time, the threaded rod 703 is driven to rotate under the action of the transmission belt 708 and the second pulley 709. The rotation of the threaded rod 703 drives the internal threaded plate 704 to move on the surface of the second guide rod 705, thereby adjusting the push plate 702.
[0049] A method for using a manufacturing and processing device for a solid-state battery comprises the following steps:
[0050] The upper cover 108 is opened by moving the handle 109, and the raw materials can be poured into the mixing barrel 101. The first servo motor 107 is activated, and its output shaft drives the rotating shaft 102 to rotate. The rotating shaft 102 drives the mixing paddle 103, the mixing rod 104, and the rotating member 105 to rotate. At this time, the mixing paddle 103, the mixing rod 104, and the rotating member 105 mix the raw materials. At the same time, the mixing rod 104 and the rotating member 105 scrape the inner wall of the mixing barrel 101. Then, the discharge valve 110 discharges the raw materials and reduces the probability of the materials sticking to the inner wall during mixing.
[0051] The material falls into the transfer barrel 201 through the transfer hopper 203. The second servo motor 204 starts its output shaft to drive the transfer auger 202 to rotate, thereby moving the material into the guide plate 205. The material is then discharged by the spray head 206 and placed on the surface of the metal foil.
[0052] The third servo motor 305 is activated to rotate one conveyor shaft 303 through its output shaft, which then drives the other conveyor shaft 303 to rotate under the action of the conveyor belt 304. The metal foil is then moved by the conveyor belt 304 and blocked by the limit baffle 306. The material is then moved to the surface of the conveyor mechanism 3 by the material transfer mechanism 2. The piston rod of the second electric telescopic rod 402 is activated to move the heating plate 403, thereby hot pressing the material and the metal foil.
[0053] After the hot pressing is completed, the fourth servo motor 505 is activated, and its output shaft drives the first gear 506 to rotate. At this time, the first sliding seat 502 is driven to move by the first gear plate 507. Then, the first electric telescopic rod 503 is activated, and its piston rod drives the vacuum suction cup 504 to move, thereby moving the electrode sheet.
[0054] The piston rod of the third electric telescopic rod 602 is activated to drive the second sliding seat 604 to move on the surface of the second sliding rail 603, and the second sliding rail 603 drives the third mounting seat 605 to move, so that the electrode sheet on the surface of the cutting disk 610 can be cut. At the same time, the support tray 609 and the cutting disk 610 can be driven to move by the electric slide 608, so as to cut different positions of the electrode sheet. After the cutting is completed, the output shaft of the fourth servo motor 505 is activated to drive the first gear 506 to rotate. At this time, the first sliding seat 502 is driven to move under the action of the first gear plate 507. Then, the piston rod of the first electric telescopic rod 503 is activated to drive the vacuum suction cup 504 to move.
[0055] The electrode sheet can be limited by the push plate 702. When the position of the push plate 702 needs to be adjusted, the fifth servo motor 706 is started. The fifth servo motor 706 starts its output shaft to drive the first pulley 707 to rotate. At this time, the threaded rod 703 is driven to rotate under the action of the transmission belt 708 and the second pulley 709. The rotation of the threaded rod 703 drives the internal threaded plate 704 to move on the surface of the second guide rod 705, thereby adjusting the push plate 702.
[0056] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes based on the technical solutions and improved concepts of the present invention within the technical scope disclosed by the present invention, and these changes should be covered by the scope of protection of the present invention.
Claims
1. A manufacturing and processing device for solid-state batteries, characterized in that: include: A mixing mechanism (1), wherein a material transfer mechanism (2) is installed on the surface of the mixing mechanism (1), a conveying mechanism (3) is provided on one side of the mixing mechanism (1), a hot pressing mechanism (4) is installed on the upper surface of the conveying mechanism (3), a material moving mechanism (5) is installed on the upper surface of the conveying mechanism (3) and on one side of the hot pressing mechanism (4), a laser cutting mechanism (6) is installed on the rear side of the conveying mechanism (3), and a laminating mechanism (7) is installed on one side of the laser cutting mechanism (6); the mixing mechanism (1) comprises a mixing barrel (101), the mixing The inner wall of the barrel (101) is rotatably connected to a rotating shaft (102), a mixing paddle (103) is fixedly connected to the surface of the rotating shaft (102), a plurality of mixing rods (104) are installed in a ring array on the surface of the rotating shaft (102) and outside the mixing paddle (103), a plurality of rotating members (105) are rotatably connected to the surface of the mixing rod (104), a scraper (106) is fixedly connected to the surface of the rotating member (105), a first servo motor (107) is installed on the top of the mixing barrel (101), and the first servo motor (107) is installed on the top of the mixing barrel (101). 07) is fixedly connected to one end of the rotating shaft (102); the upper surface of the mixing barrel (101) is rotatably connected to two upper cover plates (108); the surface of the upper cover plates (108) is fixedly connected to a movable handle (109); the top of the mixing barrel (101) is installed with a discharge valve (110); the material transfer mechanism (2) includes a material transfer barrel (201) installed on the surface of the mixing barrel (101); the inner wall of the material transfer barrel (201) is rotatably connected to a material transfer screw (202); the surface of the material transfer screw (202) is installed with a material transfer hopper (203), and the two ends of the transfer hopper (203) are respectively connected to the transfer barrel (201) and the discharge valve (110), a second servo motor (204) is installed on the top of the transfer barrel (201), and the output shaft of the second servo motor (204) is fixedly connected to the top of the transfer auger (202), a guide plate (205) is installed on the surface of the transfer auger (202), a spray head (206) is installed on one side of the guide plate (205), and the two ends of the guide plate (205) are respectively connected to the transfer auger (202) and the spray head (206).
2. A manufacturing and processing device for solid-state batteries according to claim 1, characterized in that: The conveying mechanism (3) comprises a first support frame (301) arranged on one side of the mixing barrel (101); a first mounting seat (302) for fixing a material guide plate (205) is installed on the surface of one side of the first support frame (301); two conveying shafts (303) are rotatably connected to the surface of the first support frame (301); the two conveying shafts (303) are rotatably connected via a conveyor belt (304); a third servo motor (305) is installed on the surface of the first support frame (301), and the output shaft of the third servo motor (305) is fixedly connected to one of the conveying shafts (303); support seats (307) are fixedly connected to both sides of the upper surface of the first support frame (301); and a limit baffle (306) is fixedly connected to the inner side of the support seat (307).
3. A manufacturing and processing device for solid-state batteries according to claim 2, characterized in that: The material moving mechanism (5) comprises a first sliding rail (501) mounted on the upper surface of the first support frame (301), the surface of the first sliding rail (501) is slidably connected to a first sliding seat (502), the surface of the first sliding seat (502) is mounted with a first electric telescopic rod (503) for longitudinal adjustment, the surface of the piston rod of the first electric telescopic rod (503) is fixedly connected with a vacuum suction cup (504), the surface of the first sliding seat (502) is mounted with a fourth servo motor (505), the surface of the output shaft of the fourth servo motor (505) is fixedly connected with a first gear (506), a first gear plate (507) is mounted on the surface of a first sliding rail (501), and the first gear (506) is meshed with the first gear plate (507).
4. A manufacturing and processing device for solid-state batteries according to claim 3, characterized in that: The hot pressing mechanism (4) comprises a second mounting seat (401) mounted on the upper surface of the first support frame (301); a second electric telescopic rod (402) extending longitudinally is mounted on the surface of the second mounting seat (401); a heating plate (403) is fixedly connected to the surface of the piston rod of the second electric telescopic rod (402); two first guide rods (404) are mounted on the upper surface of the heating plate (403), and the first guide rods (404) are slidably connected to the surface of the second electric telescopic rod (402).
5. The manufacturing and processing device for solid-state batteries according to claim 4, characterized in that: The laser cutting mechanism (6) includes a second support frame (601) installed on the rear side of the first support frame (301), a third electric telescopic rod (602) is installed on the upper surface of the second support frame (601), two second sliding rails (603) are installed on the surface of the second support frame (601), the surface of the second sliding rail (603) is slidably connected to the second sliding seat (604), and the piston rod of the third electric telescopic rod (602) is fixedly connected to the second sliding seat (604), the surface of the second sliding seat (604) is installed with a third mounting seat (605), the surface of the third mounting seat (605) is installed with a fourth electric telescopic rod (606) extending longitudinally, the surface of the piston rod of the fourth electric telescopic rod (606) is fixedly connected to a laser generator (607), the surface of the second support frame (601) is installed with an electric slide (608), the surface of the moving part of the electric slide (608) is fixedly connected to two support trays (609), and the surface of the support tray (609) is clamped with a cutting disk (610).
6. The manufacturing and processing device for solid-state batteries according to claim 5, characterized in that: The lamination mechanism (7) includes a third support frame (701) installed on the rear side of the second support frame (601), the surface of the third support frame (701) is slidably connected to a push plate (702), the surface of the third support frame (701) is rotatably connected to a threaded rod (703), the surface of the threaded rod (703) is threadedly connected to an internal threaded plate (704), and the internal threaded plate (704) is fixedly connected to the push plate (702), and the surface of the third support frame (701) is located on both sides of the threaded rod (703). The second guide rod (705) is fixedly connected to the surface of the second guide rod (705), and the internal threaded plate (704) is slidably connected to the surface of the second guide rod (705). The surface of the third support frame (701) is mounted with a fifth servo motor (706). The surface of the output shaft of the fifth servo motor (706) is fixedly connected with a first pulley (707). The surface of the threaded rod (703) is fixedly connected with a second pulley (709), and the first pulley (707) and the second pulley (709) are rotationally connected via a transmission belt (708).
Citation Information
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